Claims
- 1. A laser sinterable mass of partially coated particles comprising, a host powder having host particles no greater than 177 .mu., an initial bulk density in the range from 0.3-0.6 gm/cm.sup.3 and an initial glass transition temperature, initial Tg, higher than 50.degree. C., said initial T.sub.g occurring at least 3.degree. C. lower than said host powder's final T.sub.g ; and,
- a coating powder having coating particles which coat said host particles leaving at least some portion thereof uncoated;
- said coating powder is selected from the group consisting of a substantially amorphous coating powder and a crystalline coating powder each having an average particle diameter in the range from 0.02.mu.-44 .mu. but smaller than said host particles, and a bulk density in the range from 0.15 to 0.35 gm/cm.sup.3 ;
- said amorphous coating powder having an initial T.sub.g and sintering temperature higher than said final T.sub.g of said host particles, and said crystalline coating powder having a crystalline melting point and sintering temperature higher than said final T.sub.g of said host particles;
- said partially coated particles being essentially free from electric charge, having an increased bulk density at least 10% higher than that of said host powder, and being flowable under applied force in the range from about 10 g-force to about 100 g-force, without caking at a storage temperature above the initial T.sub.g of said host powder but below said host powder's final T.sub.g ;
- said increased bulk density being obtained by blending said host powder with said coating powder with an energy input greater than 30 watt-hr/lb of said host powder, so as to discharge coated powder at a drop temperature above a minimum drop temperature defined as initial T.sub.g minus 20.degree. C., but at a drop temperature below said host powder's final T.sub.g.
- 2. The laser sinterable mass of claim 1 wherein, said host powder has a T.sub.g which occurs, from initial T.sub.g to final T.sub.g, over a range of from 3.degree. C. to 50.degree. C.; said mass is sinterable into a porous solid mass having a porosity in the range from about 0.1 to about 0.5 when said mass stored in a target bed of a sintering machine to be sintered by a laser beam so as to cause viscous flow only at contiguous boundaries of said particles of host powder, with at least some portion of substantially all particles remaining solid, said sintering being effected at a temperature within a window of sinterability in the range from above said host powder's initial T.sub.g when sintering commences, to its final T.sub.g, above which sintering ceases; whereby said porous solid mass is autogenously densified.
- 3. The laser sinterable mass of claim 1 wherein said substantially amorphous coating powder is an amorphous inorganic or amorphous organic solid, has an average particle diameter in the range from 0.02 .mu. to less than 20 .mu., an initial T.sub.g at least 20.degree. C. higher than said host powder's final T.sub.g, and, is present in an amount in the range from about. 0.1 of 20 parts by weight, based on 100 parts by weight of said partially coated particles.
- 4. The laser sinterable mass of claim 3 wherein said amorphous coating powder has an average particle diameter in the range from 0.02 .mu. to about 1 .mu.;
- said amorphous inorganic solid is selected frown the group consisting of silica, alumina and glass-forming inorganic oxides; and,
- said amorphous organic solid is selected from the group consisting of poly(vinyl chloride), polycarbonate, poly(methyhnethacrylate), poly(phenylene oxide), a poly(phenylene oxide)/polystyrene blend, polystyrene, and acrylonitrile-butadiene-styrene terpolymer (ABS).
- 5. The laser sinterable mass of claim 4 wherein,
- said host powder has an average particle size smaller than 105 .mu. , and an initial T.sub.g in the range from 50.degree. C. to about 300.degree. C.;
- said coating powder has an average particle diameter in the range from 0.02 .mu. to less than 0.2 .mu., and, said initial T.sub.g of said coating powder is higher than 200.degree. C.
- 6. The laser sinterable mass of claim 4 wherein
- said host powder is selected from the group consisting of poly(vinyl chloride) (PVC), poly(methylmethacrylate), polystyrene, polycarbonate, polycarbonate/nylon alloy, polycarbonate/polyester alloy, ABS, ABS/nylon alloy, ABS/PVC alloy, acrylic copolymers, polysulfone, polysulfone/ABS alloy, polyetherimides, polyamide-imides, polyarylates, fluoropolymers, polyphenylene oxide/polystyrene blend, and poly(phenylene sulfide); and, said coating powder has an average particle than diameter in the range from 0.02 .mu. to 0.2.mu., and, a T.sub.g higher than 200.degree. C.
- 7. The laser sinterable mass of claim 6 wherein
- said host powder is selected from the group consisting of poly(vinyl chloride), poly(methylmethacrylate), and polycarbonate; and,
- said amorphous coating powder is selected from the group consisting of silica, alumina, and glass-forming inorganic oxides.
- 8. The laser sinterable mass of claim 3 wherein said coating powder covers less than 50% of the surfaces of particles of said host powder.
- 9. The laser sinterable mass of claim 1 wherien said crystalline coating powder is a crystalline inorganic or crystalline organic solid, has an average particle diameter in the range from 0l02 .mu. to less than 20 .mu., a melting point at least 20.degree. C. higher than the final Tg of said host powder, and is present in an amount in the range from about 0.1 to 20 parts by weight, based on 100 parts by weight of said partially coated particles.
- 10. The laser sinterable mass of claim 9 wherein said crystalline coating powder has an average particle diameter in the range from 0.02 .mu.to less than about 1 .mu.;
- said crystalline inorganic solid is selected from the group consisting of an oxide, carbonate or silicate of an element of Groups 2a, 3a, 4a and 4b of the Periodic Table; and,
- said crystalline organic solid is selected from the group consisting of poly(butyleneterephthalate), nylon 11, poly(ethyleneterephthalate), poly(ether ether ketone), poly(phenylene sulfide) and polyolefin.
- 11. The laser sinterable mass of claim 10 wherein, said host powder has an average particle size smaller than 105 .mu., and an initial T.sub.g in the range from 50.degree. C. to about 300.degree. C.;
- said crystalline coating powder has an average particle diameter in the range from 0.02 .mu. to less than 0.2 .mu. and melting point higher than 200.degree. C.
- 12. The laser sinterable mass of claim 1 wherein said coating powder covers less than 50% of the surfaces of particles of said host powder.
- 13. A laser sinterable mass of partially coated particles of substantially amorphous poly(vinyl chloride) PVC particles comprising,
- PVC particles no greater than 177 .mu., having a bulk density in the range from 0.35 to 0.6 gm/cm.sup.3, an initial T.sub.g occurring at about 65.degree. C. and a final T.sub.g occurring at about 88.degree. C.; and,
- a coating powder having coating particles which coat said PVC particles leaving at least some portion thereof uncoated;
- said coating powder is selected from the group consisting of a substantially amorphous coating powder and a crystalline coating powder each having an average diameter in the range from 0.02 --44 .mu. but smaller than said PVC particles, a bulk density in the range from 0.15 to 0.35, and, an initial T.sub.g higher than 100.degree. C.;
- said amorphous coating powder having an initial T.sub.g and sintering temperature higher than said final T.sub.g of said PVC particles, and said crystalline coating powder having a crystalline melting point and sintering temperature higher than said final T.sub.g of said PVC particles;
- said partially coated particles of PVC having an increased bulk density at least 10% higher than that of said host PVC powder, being essentially free from electric charge, and flowable under applied force in the range from about 10 g-force to about 100 g-force, without caking at a storage temperature above 65.degree. C. but below 130.degree. C.; and,
- said increased bulk density is obtained by blending said PVC powder with said coating powder with an energy input greater than 30 watt-hr/lb of said PVC powder, so as to discharge said partially coated PVC powder at a drop temperature above 65.degree. C. , but no higher than 88.degree. C.
- 14. The laser sinterable mass of PVC particles of claim 13 wherein,
- said mass is sinterable into a porous solid mass having a porosity in the range from about 0.1 to about 0.5 when stored in a target bed of a sintering machine to be sintered by a laser beam so as to cause viscous flow only at contiguous boundaries of said PVC particles, with at least some portion of substantially all particles remaining solid, said sintering being effected at a temperature within a window of sinterability in the range from above 65.degree. C. when sintering commences, to 88.degree. C., above which sintering ceases; whereby said porous solid mass is autogenously densified.
- 15. The sinterable mass of claim 13 wherein said substantially amorphous coating powder is an atnorphous inorganic or amorphous organic solid, has an average particle diameter in the range from 0.02 .mu.to less than 20 .mu., an initial T.sub.g at least 20.degree. C. higher than 88.degree. C., and, is present in an atnount in five range from about 0.1 to 20 parts by weight, based on 100 parts by weight of said partially coated PVC particles.
- 16. The sinterable mass of claim 15 wherein said amorphous coating powder has an average particle diameter in the range from 0.02 .mu. to less than about 1 .mu.;
- said inorganic solid is selected from the group consisting of amorphous silica, alumina and glass-forming inorganic oxides; and,
- said amorphous organic solid is selected from the group consisting of polycarbonate, poly(methylmethacrylate), poly(phenylene oxide), poly(phenylene oxide)/polymer blend, polystyrene, and acrylonitrile-butadiene-styrene terpolymer.
- 17. The mass of partially coated particles of claim 16 wherein said amorphous coating powder has an average particle diameter in the range from 0.02. .mu. to less than 0.2 .mu. and said initial T.sub.g of said coating powder is higher than 200.degree. C.
- 18. The sinterable mass of claim 15 wherein said crystalline coating powder has an average particle diameter in the range from 0.02 .mu. to less than about 1 .mu.;
- said crystalline inorganic solid is selected from the group consisting of an oxide. carbonate or silicate of an element of Groups 2a, 3a, 4a and 4b of the Periodic Table; and,
- said crystalline organic solid is selected from the group consisting of poly(butyleneterephthalate), nylon 11, poly(ethyleneterephthalate), poly(ether ether ketone), and polyolefin.
- 19. The mass of partially coated particles of claim 18 wherein said crystalline coating powder has an average particle diameter in the range from 0.02 .mu. to less than 0.2 .mu. and said melting point of said coating powder is higher than 200.degree. C.
- 20. The sinterable mass of claim 15 wherein said amorphous coating powder is an inorganic or organic solid, having an average particle diameter in the range from 0.02 .mu. to less than 1 .mu. and a melting point at least 100.degree. C.
- 21. The sinterable mass of claim 13 wherein said crystalline powder is a crystalline inorganic or crystalline organic solid, has an average particle diameter in the range from 0.02 .mu. to less than 20 .mu., a melting point at .least 20.degree. C. higher than 88.degree. C., and, is present in an amount in the range from about 0.1 to 20 parts by weight, based on 100 parts by weight of said partially coated PVC particles. higher than 88.degree. C.
- 22. The mass of partially coated particles of claim 21 wherein said coating powder is a crystalline solid having an average particle diameter in the range from 0.02 .mu. to less than 1 .mu. and a sintering temperature at least 100.degree. C. higher than 88.degree. C.
- 23. The mass of partially coated particles of claim 21 wherein said coating powder is a crystalline solid having an average particle diameter in the range from 0.02. .mu. to less than 1 .mu. and a sintering temperature at least 100.degree. C. higher than 171.degree. C.
- 24. The mass of partially coated particles of claim 23 wherein said crystalline coating powder has an average particle diameter in the range from 0.02 .mu. to less than 0.2 .mu. and said melting point of said coating powder is higher than 230.degree. C.
- 25. The sinterable mass of claim 13 wherein said coating powder covers less than 50% of the surfaces of particles of said PVC powder.
- 26. The sinterable mass of claim 13 wherein, said PVC powder has an average particle size smaller than 05.mu.; said coating powder has an average particle size smaller than 0.2.mu., and, said initial T.sub.g of said coating powder is higher than 200.degree. C.
- 27. A laser sinterable mass of partially coated particles of substantially amorphous polycarbonate (PC) particles comprising,
- host PC particles no greater than 177 .mu., having a bulk density in the range from 0.33 to 0.55 gm/cm.sup.3, an initial T.sub.g occurring at about 130.degree. C. and a final T.sub.g occurring at about 171.degree. C.; and
- a coating powder having coating particles which coat said PC particles leaving at least some portion thereof uncoated;
- said coating powder is selected from the group consisting of a substantially amorphous coating powder having an initial T.sub.g higher than 200.degree. C., and a crystalline coating powder each having an average diameter in the range from 0.02 .mu.-44 .mu. but smaller than said PC particles, a bulk density in the range from 0.15 to 0.35 gm/cm.sup.3, and, said partially coated particles of PC having an increased bulk density at least 10% higher than that of said host PC powder, being essentially free from electric charge, and flowable under applied force in the range from about 10 g-force to about 100 g-force, without caking at a storage temperature above 130.degree. C. but below 171.degree. C.; and, said increased bulk density is obtained by blending said PC powder with said coating powder with an energy input greater than 30 watt-hr/lb of said PC powder, so as to discharge said partially coated PC powder at a drop temperature above 130.degree. C., but below 171.degree. C.
- 28. The laser sinterable mass of PC particles of claim 27 wherein, said mass is sinterable into a porous solid mass having a porosity in the range from about 0.1 to about 0.5 when stored in a target bed of a sintering machine to be sintered by a laser beam so as to cause viscous flow only at Contiguous boundaries of said PC particles, with at least some portion of substantially all particles remaining solid, said sintering being effected at a temperature within a window of sinterability in the range from above 130.degree. C. when sintering commences, to 171.degree. C., above which sintering ceases; whereby said porous solid mass is autogenously densified.
- 29. The sinterable mass of claim 27 wherein said substantially amorphous coating powder is an amorphous inorganic or amorphous organic solid, has an average particle diameter in the range from 0.02 .mu. to less than 20 .mu., an initial T.sub.g at least 20.degree. C. higher than 171.degree. C., and, is present in an amount in the range from about 0.1 to 20 parts by weight, based on 100 parts by weight of said partially coated PC particles.
- 30. The sinterable mass of claim 29 wherein said amorphous coating powder has an average particle diameter in the range from 0.02. .mu. to less than about 1 .mu.;
- said amorphous inorganic solid is selected from the group consisting of silica, alumina, and glass-forming inorganic compounds; and,
- said amorphous organic solid is selected from the group consisting of poly(vinyl chloride), polycarbonate, poly(methylmethacrylate), poly(phenylene oxide), poly(phenylene oxide)/polystyrene blend, polystyrene, and acrylonitrile-but. adiene-styrene terpolymer.
- 31. The sinterable mass of claim 27 wherein said crystalline coating powder is a crystalline inorganic or crystalline organic solid, has an average particle diameter in the range from 0.02 .mu. to less than 20 .mu., a melting point at least 20.degree. C. higher than 171.degree. C., and. is present in an amount in the range from about 0.1 to 20 parts by weight, based on 100 parts by weight of said partially coated PC particles.
- 32. The sinterable mass of claim 31 wherein said crystalline coating powder has an average particle diameter in the range from 0.02 .mu. to less than about 1 .mu.;
- said crystalline inorganic solid is selected from the group consisting of an oxide, Carbonate or silicate of an element of Groups 2a, 8a, 4a and 4b of the Periodic Table; and,
- said crystalline organic solid is selected from the group consisting of poly(but. yleneterephthalate), nylon 11, poly(ethyleneterephthalate), and poly(ether ether keyone).
- 33. The sinterable mass of claim 27 wherein said coating powder covers less than 50% of the surfaces of particles of said PVC powder.
- 34. The sinterable mass of claim 27 wherein, said PC powder has an average particle diameter in the range from 0.02 .mu. to less than 105 .mu.; said coating powder has an average particle size smaller than 0.2 .mu., and, said initial T.sub.g of said coating powder is higher than 200.degree. C.
- 35. The sinterable mass of claim 27 wherein said amorphous coating powder is an inorganic or organic solid. having an average particle diameter in the range from 0.02. .mu. less than 1 .mu. and a melting point at least 100.degree. C. higher than 171.degree. C.
- 36. The mass of partially coated particles of claim 35 wherein said amorphous coating powder has an average particle diameter in the range from 0.02 .mu. to less than 0.2 .mu. and said initial T.sub.g of said coating powder is higher than 230.degree. C.
- 37. A process for preparing a mass of sinterable particles comprising,
- (a) charging a mixture of powder particles to a blending zone, said mixture consisting essentially of
- (i) a thermoplastic synthetic resinous host powder having a glass transition temperature (T.sub.g) occurring over a range of at least 3+ C., and an average host particle diameter no greater than about 177 .mu., and,
- (ii) a coating powder selected from the group consisting of a substantially amorphous coating powder and a crystalline coating powder each having an average particle diameter in the range from 0.02 .mu.-44 .mu. but smaller than host particles of said host powder, and a bulk density in the range from 0.15 to 0.35 gm/cm.sup.3.
- (b) blending said mixture of powder particles at high shear in said blending zone with energy in excess of about 30 watt-hr per lb of host powder until said mixture of powder particles reaches a chosen-drop temperature above (initial T.sub.g -20.degree. C.) but below said host powder's final T.sub.g ; and, (c) discharging a blended mixture of partially coated host particles having at least some portion of their surfaces left uncoated, and the remaining portion coated with said coating particles, a bulk density at least 10% higher than that of said host powder, said blended mixture being flowable and storable without caking at a storage temperature above the initial T.sub.g of said host powder but below its final T.sub.g at which storage temperature said host powder would not be flowable as an uncoated powder.
- 38. The process of claim 37 wherein said mixture includes a thermooxidative stabilizer and a lubricant, each present in the range from 0.01 to 5 parts by weight.
Parent Case Info
This application is a continuation-in-part application of Ser. No. 07/623,323 filed Dec. 5, 1990 now abandoned.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
5034432 |
Ueno et al. |
Jul 1991 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
623323 |
Dec 1990 |
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