Claims
- 1. An alloy comprising a melt mixture of at least one glass and/or glass-ceramic and at least one organic thermoplastic or thermosetting polymer, said alloy exhibiting an essentially uniform, fine-grained microstructure comprised of polymer and glass and/or glass-ceramic elements wherein said microstructure is selected from the group consisting of:
- (a) localized phase inversion/reversal;
- (b) an interconnected, co-continuous spinodal-type microstructure;
- (c) fine spherical, ellipsoidal, and/or serpentine particles of glass and/or glass-ceramic separated by thin membranes of polymer;
- (d) an interlocking, three-dimensional microstructure comprising islands of glass and/or glass-ceramic in polymer, said polymer having the appearance of winding channels;
- (e) an interlocking, three-dimensional microstructure comprising islands of polymer in glass and/or glass-ceramic, said glass and/or glass/ceramic having the appearance of winding channels;
- (f) a fine emulsion of glass and/or glass-ceramic dispersed in polymer; and
- (g) a fine emulsion of polymer dispersed in glass and/or glass-ceramic.
- 2. An alloy according to claim 1 wherein said polymer and glass and/or glass-ceramic elements are of relatively uniform dimensions.
- 3. An alloy according to claim 1 wherein the dispersed particles of said polymer and glass and/or glass-ceramic elements are less than 50 microns in the largest dimension.
- 4. An alloy according to claim 1 wherein said polymer and glass and/or glass-ceramic elements are in an essentially non-oriented relationship.
- 5. An alloy according to claim 1 which is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 6. An alloy according to claim 5 wherein said glass and/or glass-ceramic is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 7. An alloy according to claim 6 wherein said glass and/or glass-ceramic exhibits a dissolution rate in boiling water of less than 1.times.10.sup.-4 g/cm.sup.2 /min.
- 8. An alloy according to claim 6 wherein said glass and/or glass-ceramic exhibits a weight gain of less than 1.times.10.sup.-66 g/cm.sup.2 /min when exposed at 40.degree. C. to a relative humidity of 80%.
- 9. An alloy according to claim 1 wherein said glass and/or glass-ceramic constitutes about 30-90% by volume of said alloy.
- 10. An alloy according to claim 9 wherein said glass and/or glass-ceramic constitutes about 40-75% by volume of said alloy.
- 11. An alloy according to claim 1 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 44-58% P.sub.2 O.sub.5, 4-10% Al.sub.2 O.sub.3 +B.sub.2 O.sub.3, consisting of 0-7% Al.sub.2 O.sub.3 and 0-10% B.sub.2 O.sub.3, 10-45% Li.sub.2 O+Na.sub.2 O, consisting of 0-30% Li.sub.2 O and 10-30% Na.sub.2 O, 0-20% Cu.sub.2 O, and 10-30% Li.sub.2 O+Cu.sub.2 O.
- 12. An alloy according to claim 1 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least two alkali metal oxides in the indicated proportions selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5.
- 13. An alloy according to claim 1 wherein said glass-ceramic contains a lithium-, zinc-, and/or lead-containing phosphate as the predominant crystal phase and consists essentially, expressed in terms of mole percent on the oxide basis, of 5-25% Li.sub.2 O+Na.sub.2 O+ K.sub.2 O, consisting of 5-25% Li.sub.2 O, 0-15% Na.sub.2 O, and 0-10% K.sub.2 O, 35-50% ZnO, 0.75-6% Al.sub.2 O.sub.3, and 29-37% P.sub.2 O.sub.5.
- 14. An alloy according to claim 1 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least one alkali metal oxide in the indicated proportion selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5, and 0.5-5% total of Y.sub.2 O.sub.3 and/or at least one oxide of a rare earth metal selected from the lanthanide group.
- 15. An alloy according to claim 1 wherein said thermoplastic polymer is selected from the group consisting of polyarylether ketones, polyphenylene sulfides, polyfluoro resins, polyetherimides, liquid crystal polyesters, polyethersulfones, polytetrafluoroethylenes, polyetherether ketones, polyetherketones, polyethylterephthalates, polybutylterephthalates, melamines, and polycarbonates.
- 16. An alloy according to claim 1 wherein said thermosetting polymer is selected from the group consisting of epoxy resins, silicone resins, polyimides, phenolics, and diallyl phthalates.
- 17. An alloy comprising a melt mixture of at least one inorganic glass and/or glass-ceramic and at least one organic thermoplastic or thermosetting polymer, there being at least partial miscibility and/or a reaction between said glass and/or the precursor glass for said glass-ceramic and said polymer to promote adhesion and/or bonding therebetween, said alloy exhibiting an essentially uniform, fine-grained microstructure of polymer and glass and/or glass-ceramic elements wherein said microstructure is selected from the group consisting of:
- (a) localized phase inversion/reversal;
- (b) an interconnected, co-continuous spinodal-type microstructure;
- (c) fine spherical, ellipsoidal, and/or serpentine particles of glass and/or glass-ceramic separated by thin membranes of polymer;
- (d) an interlocking, three-dimensional microstructure comprising islands of glass and/or glass-ceramic in polymer, said polymer having the appearance of winding channels;
- (e) an interlocking, three-dimensional microstructure comprising islands of polymer in glass and/or glass-ceramic, said glass and/or glass-ceramic having the appearance of winding channels;
- (f) a fine emulsion of glass and/or glass-ceramic dispersed in polymer; and
- (g) a fine emulsion of polymer dispersed in glass and/or glass-ceramic.
- 18. An alloy according to claim 17 wherein said polymer and glass and/or glass-ceramic elements are of relatively uniform dimensions.
- 19. An alloy according to claim 17 wherein the dispersed particles of said polymer and glass and/or glass-ceramic elements are less than 50 microns in the largest dimension.
- 20. An alloy according to claim 17 wherein said polymer and glass and/or glass-ceramic elements are in an essentially non-oriented relationship.
- 21. An alloy according to claim 17 which is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 22. An alloy according to claim 21 wherein said glass and/or glass-ceramic is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 23. An alloy according to claim 22 wherein said glass and/or glass-ceramic exhibits a dissolution rate in boiling water of less than 1.times.10-4 g/cm.sup.2 /min.
- 24. An alloy according to claim 22 wherein said glass and/or glass-ceramic exhibits a weight gain of less than 1.times.10.sup.-6 g/cm.sup.2 /min. when exposed at 40.degree. C. to a relative humidity of 80%.
- 25. An alloy according to claim 17 wherein said glass and/or glass-ceramic constitutes about 30-90% by volume of said alloy.
- 26. An alloy according to claim 25 wherein said glass and/or glass-ceramic constitutes about 40-75% by volume of said alloy.
- 27. An alloy according to claim 17 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 44-58% P.sub.2 O.sub.5, 4-10% Al.sub.2 O.sub.3 +B.sub.2 O.sub.3, consisting of 0-7% Al.sub.2 O.sub.3 and 0-10% B.sub.2 O.sub.3, 10-45% Li.sub.2 O+Na.sub.2 O, consisting of 0-30% Li.sub.2 O and 10-30% Na.sub.2 O, 0-20% Cu.sub.2 O, and 10-30% Li.sub.2 O+Cu.sub.2 O.
- 28. An alloy according to claim 17 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least two alkali metal oxides in the indicated proportions selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5.
- 29. An alloy according to claim 17 wherein said glass-ceramic contains a lithium-, zinc-, and/or lead-containing phosphate as the predominant crystal phase and consists essentially, expressed in terms of mole percent on the oxide basis, of 5-25% Li.sub.2 O+Na.sub.2 O+K.sub.2 O, consisting of 5-25% Li.sub.2 O, 0-15% Na.sub.2 O, and 0-10% K.sub.2 O, 35-50% ZnO, 0.75-6% Al.sub.2 O.sub.3, and 29-37% P.sub.2 O.sub.5.
- 30. An alloy according to claim 17 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least one alkali metal oxide in the indicated proportion selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5, and 0.5-5% total of Y.sub.2 O.sub.3 and/or at least one oxide of a rare earth metal selected from the lanthanide group.
- 31. An alloy according to claim 17 wherein said thermoplastic polymer is selected from the group consisting of polyarylether ketones, polyphenylene sulfides, polyfluoro resins, polyetherimides, liquid crystal polyesters, polyethersulfones, polyetherether ketones, polyetherketones, polyethylterephthalates, polybutylterephthalates, melamines, and polycarbonates.
- 32. An alloy according to claim 17 wherein said thermosetting polymer is selected from the group consisting of epoxy resins, silicone resins, polyimides, phenolics, and diallyl phthalates.
- 33. A method for making an article of an alloy comprising a melt mixture of at least one inorganic glass and at least one organic thermoplastic or thermosetting polymer, the working temperature of said glass being compatible with the working temperature of said polymer, which comprises the steps of:
- (a) high shear dispersive mixing of said glass and polymer at a temperature and viscosity represented by the working temperature thereof to form a melt mixture of said glass and polymer;
- (b) shaping said mixture into an article of a desired geometry; and then
- (c) cooling said article to room temperature;
- said alloy exhibiting an essentially uniform, fine-grained microstructure of polymer and glass elements wherein said microstructure is selected from the group consisting of:
- (a) localized phase inversion/reversal;
- (b) an interconnected, co-continuous spinodal-type microstructure;
- (c) fine spherical ellipsoidal, and/or serpentine particles of glass and/or glass-ceramic separated by thin membranes of polymer;
- (d) an interlocking, three-dimensional microstructure comprising islands of glass and/or glass-ceramic in polymer, said polymer having the appearance of winding channels;
- (e) an interlocking, three-dimensional microstructure comprising islands of polymer in glass and/or glass-ceramic, said glass and/or glass-ceramic having the appearance of winding channels;
- (f) a fine emulsion of glass and/or glass-ceramic dispersed in polymer; and
- (g) a fine emulsion of polymer dispersed in glass and/or glass-ceramic.
- 34. A method according to claim 33 wherein said glass and polymer are subjected to high shear dispersive mixing in the form of finely-divided bodies.
- 35. A method according to claim 33 wherein said working temperature represents a temperature at which said glass exhibits a viscosity of less than 10.sup.8 poises.
- 36. A method according to claim 35 wherein said working temperature represents a temperature at which said glass exhibits a viscosity between about 10.sup.4 -10.sup.7 poises.
- 37. A method according to claim 33 wherein said working temperature is below 500.degree. C.
- 38. A method according to claim 37 wherein said working temperature is between about 350.degree.-450.degree. C.
- 39. A method according to claim 33 wherein the source of said high shear dispersive mixing is a twin screw extruder.
- 40. A method according to claim 33 wherein said polymer and glass elements are of relatively uniform dimensions.
- 41. A method according to claim 33 wherein the dispersed particles of said polymer and glass elements are less than 50 microns in the largest dimension.
- 42. A method according to claim 33 wherein said polymer and glass elements are in an essentially non-oriented relationship.
- 43. A method according to claim 33 wherein said alloy is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 44. A method according to claim 43 wherein said glass is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 45. A method according to claim 44 wherein said glass exhibits a dissolution rate in boiling water of less than 1.times.10.sup.-4 g/cm.sup.2 /min.
- 46. A method according to claim 44 wherein said glass exhibits a weight gain of less than 1.times.10.sup.-6 g/cm.sup.2 /min. when exposed at 40.degree. C. to a relative humidity of 80%.
- 47. A method according to claim 33 wherein said glass constitutes about 30-90% by volume of said alloy.
- 48. A method according to claim 47 wherein said glass constitutes about 40-75% by volume of said alloy.
- 49. A method according to claim 33 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 44-58% P.sub.2 O.sub.5, 4-10% Al.sub.2 O.sub.3 +B.sub.2 O.sub.3, consisting of 0-7% Al.sub.2 O.sub.3 and 0-10% B.sub.2 O.sub.3, 10-45% Li.sub.2 O+Na.sub.2 O, consisting of 0-30% Li.sub.2 O and 10-30% Na.sub.2 O, 0-20% Cu.sub.2 O, and 10-30% Li.sub.2 O+Cu.sub.2 O.
- 50. A method according to claim 33 wherein said glass consists essentially, expressed in terms of mole percent on
- the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least two alkali metal oxides in the indicated proportions selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5.
- 51. A method according to claim 53 wherein said glass consists essentially, expressed in terms of mole percent on the oxide basis, of 10-35% R.sub.2 O, wherein R.sub.2 O consists of at least one alkali metal oxide in the indicated proportion selected from the group consisting of 0-25% Li.sub.2 O, 0-25% Na.sub.2 O, and 0-25% K.sub.2 O, 12-55% ZnO, and 28-40% P.sub.2 O.sub.5, and 0.5-5% total of Y.sub.2 O.sub.3 and/or at least one oxide of a rare earth metal selected from the lanthanide group.
- 52. A method according to claim 53 wherein said thermoplastic polymer is selected from the group consisting of polyarylether ketones, polyphenylene sulfides, polyfluoro resins, polyetherimides, liquid crystal polyesters, polyethersulfones, polytetrafluoroethylenes, polyetherether ketones, polyetherketones, polyethylterephthalates, polybutylterephthalates, melamines, and polycarbonates.
- 53. A method according to claim 53 wherein said thermosetting polymer is selected from the group consisting of epoxy resins, silicone resins, polyimides, phenolics, and diallyl phthalates.
- 54. A method for making an article of an alloy comprising a melt mixture of at least one inorganic glass-ceramic and at least one organic thermoplastic or thermosetting polymer, the working temperature of the precursor glass for said glass-ceramic being compatible with the working temperature of said polymer, which comprises the steps of:
- (a) high shear dispersive mixing of said precursor glass and polymer at a temperature and viscosity represented by the working temperature thereof to form a melt mixture of said precursor glass and polymer;
- (b) cooling and simultaneously shaping said mixture into an article of a desired geometry;
- (c) heat treating said article to cause said precursor glass to crystallize in situ to form a glass-ceramic; and then
- (d) cooling said article to room temperature.
- said alloy exhibiting an essentially uniform, fine-grained microstructure of polymer and glass-ceramic elements wherein said microstructure is selected from the group consisting of:
- (a) localized phase inversion/reversal;
- (b) an interconnected, co-continuous spinodal-type microstructure;
- (c) fine spherical, ellipsoidal, and/or serpentine particles of glass-ceramic separated by thin membranes of polymer;
- (d) an interlocking, three-dimensional microstructure comprising islands of glass-ceramic in polymer, said polymer having the appearance of winding channels;
- (e) an interlocking, three-dimensional microstructure comprising islands of polymer in glass-ceramic, said glass-ceramic having the appearance of winding channels;
- (f) a fine emulsion of glass-ceramic dispersed in polymer; and
- (g) a fine emulsion of polymer dispersed in glass-ceramic.
- 55. A method according to claim 54 wherein said precursor glass and polymer are subjected to high shear dispersive mixing in the form of finely-divided bodies.
- 56. A method according to claim 54 wherein said working temperature represents a temperature at which said precursor glass exhibits a viscosity of less than 10.sup.8 poises.
- 57. A method according to claim 56 wherein said working temperature represents a temperature at which said precursor glass exhibits a viscosity between about 10.sup.4 -10.sup.7 poises
- 58. A method according to claim 54 wherein said working temperature is below 500.degree. C.
- 59. A method according to claim 58 wherein said working temperature is between about 350.degree.-450.degree. C.
- 60. A method according to claim 54 wherein the source of said high shear dispersive mixing is a twin screw extruder.
- 61. A method according to claim 54 wherein said shaping of said mixture into an article of a desired geometry and said heat treating of said article are carried out in the same step.
- 62. A method according to claim 54 wherein said polymer and glass and/or glass-ceramic elements are of relatively uniform dimensions.
- 63. A method according to claim 54 wherein the dispersed particles of said polymer and glass-ceramic elements are less than 50 microns in the largest dimension.
- 64. A method according to claim 54 wherein said polymer and glass-ceramic elements are in an essentially nonoriented relationship.
- 65. A method according to claim 54 wherein said alloy is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 66. A method according to claim 65 wherein said glass-ceramic is essentially non-hygroscopic and exhibits excellent resistance to attack by moisture.
- 67. A method according to claim 66 wherein said glass-ceramic exhibits a dissolution rate in boiling water of less than 1.times.10.sup.-4 g/cm.sup.2 /min.
- 68. A method according to claim 66 wherein said glass-ceramic exhibits a weight gain of less than 1.times.10.sup.-6 g/cm.sup.2 /min when exposed at 40.degree. C. to a relative humidity of 80%.
- 69. A method according to claim 54 wherein said glass-ceramic constitutes about 30-90% by volume of said alloy.
- 70. A method according to claim 69 wherein said glass-ceramic constitutes about 40-75% by volume of said alloy.
- 71. A method according to claim 54 wherein said glass-ceramic contains a lithium-, zinc-, and/or lead-containing phosphate as the predominant crystal phase and consists essentially, expressed in terms of mole percent on the oxide basis, of 5-25% Li.sub.2 O+Na.sub.2 O+ K.sub.2 O, consisting of 5-25% Li.sub.2 O, 0-15% Na.sub.2 O, and 0-10% K.sub.2 O, 35-50% ZnO, 0.75-6% Al.sub.2 O.sub.3, and 29-37% P.sub.2 O.sub.5.
- 72. A method according to claim 54 wherein said thermoplastic polymer is selected from the group consisting of polyarylether ketones, polyphenylene sulfides, polyfluoro resins, polyetherimides, liquid crystal polyesters, polyethersulfones, polytetrafluoroethylenes, polyetherether ketones, polyetherketones, polyethylterephthalates, polybutylterephthalates, melamines, and polycarbonates.
- 73. A method according to claim 54 wherein said thermosetting polymer is selected from the group consisting of epoxy resins, silicone resins, polyimides, phenolics, and diallyl phthalates.
Parent Case Info
This is a continuation-in-part of Ser. No. 258,676, filed Oct. 17, 1988 and now abandoned.
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Number |
Name |
Date |
Kind |
3732181 |
Hartford et al. |
May 1973 |
|
4141877 |
Luttinger et al. |
Feb 1979 |
|
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2008041 |
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JPX |
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Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
258676 |
Oct 1988 |
|