Method for Engineering Three-Dimensional Synthetic Vascular Networks Through Mechanical Micromachining and Mutable Polymer Micromolding
US-2015376595-A1 · Dec 31, 2015 · US
US9855679B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9855679-B2 |
| Application number | US-201414152403-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 10, 2014 |
| Priority date | Nov 19, 2009 |
| Publication date | Jan 2, 2018 |
| Grant date | Jan 2, 2018 |
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A consumable material and sensor assembly for use in an additive manufacturing system, the consumable material comprising an exterior surface having encoded markings that are configured to be read by the sensor assembly, where the consumable material is configured to be consumed in the additive manufacturing system to build at least a portion of a three-dimensional model.
Opening claim text (preview).
The invention claimed is: 1. An encoded filament for use in an additive manufacturing system having an extrusion head, the encoded filament comprising: compositionally, a consumable polymer based material; a longitudinal length comprising a varying cross-sectional geometry; spaced apart volume-increment markings along the longitudinal length of the encoded filament wherein a distance between the increment markings varies to define segments of the encoded filament having volumes that are substantially the same, wherein the volume-increment markings are configured to be read by an optical sensor of the additive manufacturing system; and the cross-sectional geometry configured to be received by a liquefier of the extrusion head for building a three-dimensional model from the consumable material. 2. The encoded filament of claim 1 , wherein the cross-sectional geometry comprises a substantially circular geometry having an average diameter ranging from about 0.8 millimeters to about 2.5 millimeters. 3. The encoded filament of claim 1 , wherein the cross-sectional geometry has a width and thickness, wherein the width of the cross-sectional geometry ranges from about 1.0 millimeter to about 10.2 millimeters, and wherein the thickness of the cross-sectional geometry ranges from about 0.08 millimeters to about 1.5 millimeters. 4. The encoded filament of claim 1 , wherein the volume-increment markings extend substantially along an entirety of the longitudinal length. 5. The encoded filament of claim 1 , wherein the consumable material comprises a thermoplastic material, and wherein the volume-increment markings comprise an ultraviolet-activated material. 6. The encoded filament of claim 1 , wherein the volume-increment markings comprise sub-marks denoting an encoding scheme for additional information. 7. The encoded filament of claim 6 , wherein the additional information in the sub-markings comprises local filament cross-sections, material type, material composition, manufacturing information for the encoded filament, product code, material origin information, or combinations thereof. 8. An encoded filament for use in an additive manufacturing system having an extrusion head, the encoded consumable filament comprising: compositionally, a consumable polymer based material; a longitudinal length comprising a varying cross-sectional geometry; volume-increment markings that are spaced apart at varying distances along the longitudinal length of the encoded filament to define a plurality of segments of the encoded filament, wherein the plurality of segments of the encoded filament comprise: a first segment having a first increment length and a first volume; and a second segment having a second increment length and a second volume, wherein the first increment length is different from the second increment length, and the first volume is substantially the same as the second volume; wherein the volume-increment markings are configured to be read by an optical sensor of the additive manufacturing system; and the cross-sectional geometry configured to be received by a liquefier of the extrusion head for building a three-dimensional model from the consumable material. 9. The encoded filament of claim 8 , wherein the volume increment markings extend in multiple linear paths along the longitudinal length and wherein the linear paths are separated by an angle of about 120 degrees such that the volume increment markings are configured to read by the optical sensor regardless of an axial orientation of the encoded filament. 10. The encoded filament of claim 8 , wherein the volume increment markings extend in one or more non-linear paths along the longitudinal length of the filament. 11. The encoded filament of claim 8 , wherein the volume-increment markings extend substantially along an entirety of the longitudinal length. 12. The encoded filament of claim 8 , wherein the consumable material comprises a thermoplastic material, and wherein the volume-increment markings comprise an ultraviolet-activated material. 13. The encoded filament of claim 8 , wherein the volume-increment markings comprise sub-marks denoting an encoding scheme for additional information. 14. The encoded filament of claim 13 , wherein the additional information in the sub-markings comprises local filament cross-sections, material type, material composition, manufacturing information for the encoded filament, product code, material origin information, or combinations thereof. 15. A method for manufacturing an encoded filament for use in building a three-dimensional model with an additive manufacturing system, the method comprising: providing a filament compositionally comprising a consumable polymer based material, and having a longitudinal length and a cross-sectional geometry configured to be received by a liquefier of an extrusion head retained by the additive manufacturing system for building he three-dimensional model from the consumable material; moving the filament at a predetermined line speed; measuring cross-sectional dimensions along the longitudinal length of the moving filament; and forming volume-increment markings spaced apart along the longitudinal length on the moving filament by varying marking phase timings in response to the measured cross-sectional dimensions such that segments of the filament between each successively formed volume-increment marking have substantially the volume and, wherein at least a portion of the segments of the filament having substantially the same volume also have different increment lengths. 16. The method of claim 15 , wherein forming the volume-increment markings along the longitudinal length on the moving filament comprise forming the volume-increment markings with a phase-lock-loop control system. 17. The method of claim 15 , wherein the cross-sectional geometry comprises a substantially circular geometry having an average diameter ranging from about 0.8 millimeters to about 2.5 millimeters, and wherein measuring the cross-sectional dimensions along the longitudinal length of the moving filament comprise measuring diameters along the longitudinal length of the moving filament. 18. The method of claim 15 , wherein the cross-sectional geometry has a width and thickness, wherein the width of the cross-sectional geometry ranges from about 1.0 millimeter to about 10.2 millimeters, and wherein the thickness of the cross-sectional geometry ranges from about 0.08 millimeters to about 1.5 millimeters, and wherein measuring the cross-sectional dimensions along the longitudinal length of the moving filament comprise measuring at least one of widths and thicknesses along the longitudinal length of the moving filament. 19. The method of claim 15 , wherein the consumable material comprises a thermoplastic material, and wherein the volume-increment markings comprise an ultraviolet-activated material. 20. The method of claim 15 , wherein the volume-increment markings comprise sub-marks denoting an encoding scheme for additional information, and wherein the additional information in the sub-markings comprises local filament cross-sections, material type, material composition, manufacturing information for the encoded filament, product code, material origin information, or combinations thereof.
Identification means · CPC title
Diffraction (for sizing particles G01N15/0205) · CPC title
for controlling or regulating additive manufacturing processes · CPC title
Discontinuous or differential coating, impregnation or bond [e.g., artwork, printing, retouched photograph, etc.] · CPC title
Apparatus for additive manufacturing; Details thereof or accessories therefor · CPC title
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