IP Library › Granted Patent US 10,759,107
Granted Patent B2
US 10,759,107 · App. 16/389,452 · Granted Sep 1, 2020

Ribbon filament and assembly for use in extrusion-based digital manufacturing systems

Inventors: J. Samuel Batchelder (Somers, NY); William J. Swanson (St. Paul, MN); S. Scott Crump (Wayzata, MN)
Assignee: STRATASYS, INC.
B29C48/05B29C48/002B29C48/0021B29C48/0022B29C48/06B29C48/18B29C48/21B29C48/832B29C48/914B29C64/118B29C69/001B32B37/153B32B38/0004B32B38/185B33Y30/00B33Y40/00B33Y50/02B33Y70/00D01D5/423D01D5/426B29K2101/12B29K2509/00B29K2509/02B29K2509/04B29K2509/08B29K2509/10B29L2007/007B32B2038/045B32B2250/02B32B2250/03B32B2250/24B32B2264/10B32B2264/101B32B2264/102B32B2264/104B32B2264/107B32B2264/108B33Y10/00Y10T428/2913Y10T428/2929Y10T428/2973
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Quick Facts
Patent No.
US 10,759,107
App. No.
16/389,452
Granted
Sep 1, 2020
Kind
B2
Abstract

A consumable material for use in an extrusion-based digital manufacturing system, the consumable material comprising a length and a cross-sectional profile of at least a portion of the length that is axially asymmetric. The cross-sectional profile is configured to provide a response time with a non-cylindrical liquefier of the extrusion-based digital manufacturing system that is faster than a response time achievable with a cylindrical filament in a cylindrical liquefier for a same thermally limited, maximum volumetric flow rate.

Claims (23)

1. A method of forming a non-cylindrical filament for use in an extrusion-based additive manufacturing system to build a three-dimensional part or a support structure in a layer-by-layer manner, the method comprising:

providing a multi-layer sheet of extrudable material, the sheet comprising a base layer and a next layer, wherein the base layer and the next layer are of different materials and at least one of the materials comprises a thermoplastic, wherein the base layer or the next layer comprises a thermoplastic loaded with carbon fiber; and

cutting the sheet of extrudable material into strips to form individual ribbon filaments, each ribbon filament configured to be melted and extruded within a liquefier and each ribbon filament having a substantially uniform length and a substantially uniform rectangular cross-sectional profile along its length, wherein the cross-sectional profile of the individual ribbon filaments have has an aspect ratio between 2.5:1 and 20:1 of width to thickness, and each of the individual ribbon filaments exhibit a Young's Modulus value ranging from 1.0 gigapascal to 5.0 gigapascals.

2. The method of claim 1 and wherein providing a multi-layer sheet of extrudable material comprises co-extruding the multi-layer sheet of extrudable material.

3. The method of claim 1 wherein the materials of the first layer and the second layer both comprise thermoplastic materials.

4. The method of claim 1 , wherein each ribbon filament has a glass transition temperature of 80° C. or higher.

5. The method of claim 4 , wherein the multi-layer sheet and the resulting ribbon filament each have a thickness of between about 0.38 millimeters (about 0.015 inches) to about 1.3 millimeters (about 0.05 inches).

6. The method of claim 5 wherein the ribbon filament has a width of between about 2.5 millimeters (about 0.10 inches) to about 7.6 millimeters (about 0.30 inches).

7. The method of claim 1 , wherein the ribbon filament exhibits a Young's Modulus value ranging from 1.5 gigapascal to 3.0 gigapascals.

8. The method of claim 1 , wherein providing the multi-layer sheet of extrudable material comprises extruding the base layer, then laminating the next layer to the base layer.

9. The method of claim 1 , wherein providing the multi-layer sheet of material comprises extruding the base layer, then forming the next layer on the base layer using one or more coating techniques.

10. The method of claim 1 and further comprising cooling the multi-layer sheet of extrudable material prior to cutting the multi-layer sheet of material into ribbon filaments.

11. The method of claim 1 and further comprising forming a topographical surface pattern in the multi-layer sheet prior to cutting the sheet of multi-layer material into ribbon filaments, to provide ribbon filaments having topographical surface patterns.

12. A method of forming a non-cylindrical filament for use in an extrusion-based additive manufacturing system to build a three-dimensional part or a support structure in a layer-by-layer manner, the method comprising:

providing a multi-layer sheet of extrudable material, wherein the sheet comprises a base layer, a top layer over the base layer, and a bottom layer beneath the base layer, wherein the base layer is a different material from the top and bottom layers and at least one of the materials comprises a thermoplastic, wherein at least one of the the top layer, the base layer and the middle layer comprises a thermoplastic loaded with carbon fibers; and

cutting the sheets of material into strips to thereby form individual ribbon filaments, each ribbon filament configured to be melted and extruded with a liquefier and each ribbon filament having a substantially uniform length and a substantially uniform rectangular cross-sectional profile along its length, wherein the cross-sectional profile of each individual ribbon filament has an aspect ratio between 2.5:1 and 20:1 of width to thickness, and each individual ribbon filament exhibits a Young's Modulus value ranging from 1.0 gigapascal to 5.0 gigapascals.

13. The method of claim 12 , wherein providing a sheet of extrudable material comprises co-extruding the base, top and bottom layers.

14. The method of claim 12 , wherein providing a sheet of extrudable material comprises extruding the base layer and laminating sheets of the top and bottom layers to the base layer.

15. The method of claim 12 , wherein the multi-layer sheet and the resulting ribbon filament each have a thickness of between about 0.38 millimeters (about 0.015 inches) to about 1.3 millimeters (about 0.05 inches).

16. The method of claim 15 , wherein the ribbon filament has a width of between about 2.5 millimeters (about 0.10 inches) to about 7.6 millimeters (about 0.30 inches).

17. The method of claim 12 , wherein providing the multi-layer sheet of material comprises forming at least one of the top layer and the bottom layer on the base layer using one or more coating techniques.

18. The method of claim 12 , and further comprising forming a topographical surface pattern in the multi-layer sheet prior to cutting the sheet of multi-layer material into ribbon filaments, to provide ribbon filaments having topographical surface patterns.

19. The method of claim 12 , wherein cutting is performed using a cutting roller.

Continuity (5)
Continuation 15420771 · Jan 31, 2017
Continuation 13530191 · Jun 22, 2012
Division 12612333 · Nov 4, 2009
Provisional Application 61247067 · Sep 30, 2009
Related Publication 20190240970A1 · Aug 8, 2019