Claims
- 1. A bed of a laser-sinterable powder in a selective laser sintering zone, said bed comprising a semi-crystalline organic polymer in finely divided particulate form, said powder being freely flowable, having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of polyacetal, polypropylene, polyethylene, and inonmers.
- 2. A laser-sintered article comprising a laser-sinterable powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of polyacetal, polypropylene, polyethylene, and inonmers, said article having a density in the range from 80% to 95% of the density of an isotropically molded article of said powder.
- 3. A method of producing a three-dimensional object, comprising the steps of:
- applying a layer of a powder at a target surface, said powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of polyacetal, polypropylene, polyethylene, and inonmers;
- directing energy at selected locations of said layer corresponding to the cross-section of the object to be formed in said layer to sinter said powder thereat;
- repeating said applying and directing steps to form the object in layerwise fashion; and
- removing unsintered powder from said object.
- 4. A bed of a laser-sinterable powder in a selective laser sintering zone, said bed comprising a semi-crystalline organic polymer in finely divided particulate form, said powder being freely flowable, having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of copolymers of nylons, acetals, ethylenes, and propylenes.
- 5. A bed of a laser-sinterable powder in a selective laser sintering zone, said bed comprising a semi-crystalline organic polymer in finely divided particulate form, said powder being freely flowable, having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of branched polyethylene and branched polypropylene.
- 6. A laser-sintered article comprising a laser-sinterable powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of copolymers of nylons, acetals, ethylenes, and propylenes, said article having a density in the range from 80% to 95% of the density of an isotropically molded article of said powder.
- 7. A laser-sintered article comprising a laser-sinterable powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of branched polyethylene and branched polypropylene, said article having a density in the range from 80% to 95% of the density of an isotropically molded article of said powder.
- 8. A method of producing a three-dimensional object, comprising the steps of:
- applying a layer of a powder at a target surface, said powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of copolymers of nylons, acetals, ethylenes, and propylenes;
- directing energy at selected locations of said layer corresponding to the cross-section of the object to be formed in said layer to sinter said powder thereat;
- repeating said applying and directing steps to form the object in layerwise fashion; and
- removing unsintered powder from said object.
- 9. A method of producing a three-dimensional object, comprising the steps of:
- applying a layer of a powder at a target surface, said powder comprised of a semi-crystalline organic polymer, said powder having a melting peak and a recrystallization peak, as shown in differential scanning calorimetry traces, which do not overlap when measured at a scanning rate of 10.degree.-20.degree. C./minute, and wherein said polymer is selected from the group consisting of branched polyethylene and branched polypropylene;
- directing energy at selected locations of said layer corresponding to the cross-section of the object to be formed in said layer to sinter said powder thereat;
- repeating said applying and directing steps to form the object in layerwise fashion; and
- removing unsintered powder from said object.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 07/980,004, now U.S. Pat. No. 5,342,919 filed Nov. 23, 1992, which has been assigned to DTM Corporation.
US Referenced Citations (11)
Foreign Referenced Citations (1)
Number |
Date |
Country |
89065403 |
Jul 1987 |
JPX |
Continuation in Parts (1)
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Number |
Date |
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Parent |
980004 |
Nov 1992 |
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