Three dimensional printer for fiber reinforced composite filament fabrication

US9327453B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9327453-B2
Application numberUS-201514848006-A
CountryUS
Kind codeB2
Filing dateSep 8, 2015
Priority dateMar 22, 2013
Publication dateMay 3, 2016
Grant dateMay 3, 2016

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Various embodiments related to three dimensional printers, and reinforced filaments, and their methods of use are described. In one embodiment, a void free reinforced filament is fed into an conduit nozzle. The reinforced filament includes a core, which may be continuous or semi-continuous, and a matrix material surrounding the core. The reinforced filament is heated to a temperature greater than a melting temperature of the matrix material and less than a melting temperature of the core prior to applying the filament from the conduit nozzle.

First claim

Opening claim text (preview).

What is claimed is: 1. A three dimensional printer for additive manufacturing of a part comprising: a supply of reinforced composite filament including a plurality of axial fiber strands extending within a matrix material; a deposition head including a conduit therethrough, a chamfer smoothly and continuously transitioning the conduit to a substantially rounded outlet tipped with an ironing lip; a deposition head drive configured to drive the ironing lip to flatten the reinforced composite filament against previously deposited portions of the part; a nozzle tip arranged along a path of the reinforced composite filament and configured to separate the reinforced composite filament to form an unattached terminal end; a filament drive configured to drive the unattached terminal end of the reinforced composite filament through the conduit to exit the outlet at the ironing lip; and a controller operatively connected to the filament drive and the deposition head drive. 2. The three dimensional printer of claim 1 , wherein the conduit comprises a clearance fit zone that prevents buckling of the reinforced composite filament. 3. The three dimensional printer of claim 2 , wherein the ironing lip is arranged and constructed to maintain a substantially constant cross sectional area of the reinforced composite filament in the clearance fit zone, at the ironing lip, and as attached to the part. 4. The three dimensional printer of claim 2 , wherein the height of the ironing lip from the top of the part is controlled to a height which spreads the plurality of axial fiber strands and flattens the reinforced composite filament against previously deposited portions of the part, and is less than a diameter of the reinforced composite filament. 5. The three dimensional printer of claim 4 , wherein the height of the ironing lip from the top of the part is controlled to a height which forms laterally and vertically bonded ranks that are flattened on at least two sides by force from the ironing lip and reaction force from the part itself. 6. The three dimensional printer of claim 2 , wherein the controller is configured to control a feed rate of the filament drive and a printing rate of the deposition head drive to, when the reinforced composite filament is anchored in the part, maintain a neutral to positive tension in the reinforced composite filament between the ironing lip and the part via tensile force along the axial fiber strands. 7. The three dimensional printer of claim 2 , wherein the controller is configured to control a feed rate of the filament drive and a printing rate of the deposition head drive to, when the reinforced composite filament is not anchored in the part, induce compression along the axial fiber strands to force the unattached terminal end of the reinforced composite filament through the conduit and to abut the part. 8. The three dimensional printer of claim 7 , wherein the controller is further configured to control the feed rate and the printing rate to translate the unattached terminal end of the reinforced composite filament abutting the part laterally underneath the ironing lip to anchor the terminal end. 9. The three-dimensional printer of claim 1 , wherein a position of the deposition head and a build platen are controlled relative to one another by driving, with the controller, the deposition head drive to control the height of the ironing lip from the top of the part to be less than a diameter of the reinforced composite filament. 10. The three-dimensional printer of claim 1 , further comprising a plurality of actuators configured to move the deposition head and a build platen relative to one another in at least three degrees of freedom and at least one additional pivoting degree of freedom. 11. The three-dimensional printer of claim 1 , wherein the nozzle tip includes the outlet and is configured to separate the reinforced composite filament at the outlet. 12. The three-dimensional printer of claim 1 , wherein the nozzle tip includes a shear cutter and is configured to separate the reinforced composite filament at the shear cutter. 13. A three-dimensional printer for additive manufacturing of a part, the three dimensional printer comprising: a supply of fiber reinforced filament including one or more axial fiber strands extending within a matrix material; a build platen supporting the part; a print head opposing the build platen and including a fiber reinforced filament ironing tip and a heater configured to heat the fiber reinforced filament ironing tip to a temperature at which the matrix material may flow; a plurality of actuators configured to move the print head and the build platen relative to one another in at least three degrees of freedom; a filament drive configured to drive the fiber reinforced filament, and the axial fiber strands embedded within, into the print head; and a controller operatively connected to the heater, the filament drive and the plurality of actuators, wherein the controller is configured to control the filament drive to move an unattached terminal end of the fiber reinforced filament through the fiber reinforced filament ironing tip and to control the plurality of actuators to move the fiber reinforced filament ironing tip to flatten the fiber reinforced filament against previously deposited portions of the part. 14. The three-dimensional printer according to claim 13 , wherein the controller is further configured to control the filament drive to advance the unattached terminal end of the fiber reinforced filament through the print head and to the heated fiber reinforced filament ironing tip at a speed sufficient to prevent the unattached terminal end from receiving sufficient heat transfer to adhere to interior walls of the print head adjacent the fiber reinforced filament ironing tip. 15. The three-dimensional printer according to claim 14 , wherein the controller is further configured to control the plurality of actuators to begin moving the print head and the build platen relative to one another in at least one degree of freedom substantially at the moment the filament drive advances the unattached terminal end of the fiber reinforced filament to the heated fiber reinforced filament ironing tip. 16. The three-dimensional printer according to claim 13 , wherein the controller is further configured to control the filament drive to advance until the terminal end and at least a portion of the one or more axial fiber strands are anchored within the part on the build platen. 17. The three-dimensional printer according to claim 13 , wherein an interior diameter of the print head between a clearance fit channel and the fiber reinforced filament ironing tip is from two to six times the diameter of the fiber reinforced filament to prevent the unattached terminal end from receiving sufficient heat transfer to adhere to interior walls of the print head adjacent the fiber reinforced filament ironing tip. 18. The three-dimensional printer according to claim 13 , wherein the controller is further configured to control the plurality of actuators and the filament drive to cooperate to maintain a transverse pressure zone that both spreads axial fiber strands and flows matrix material within fiber reinforced filament to form the part on the build platen as the build platen and print head are moved relative to one another. 19. The three-dimensional printer according to claim 18 , wherein the controller is further configured to control the plurality of actuators and the filament drive to cooperate to apply a com

Assignees

Inventors

Classifications

  • Measures for feeding or distributing the matrix material in the reinforcing structure · CPC title

  • of short lengths, e.g. chopped filaments, staple fibres or bristles · CPC title

  • Fiber placement heads, e.g. component parts, details or accessories · CPC title

  • using fibres of substantial or continuous length {(non-woven fabrics per se D04H3/00)} · CPC title

  • for controlling or regulating additive manufacturing processes · CPC title

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What does patent US9327453B2 cover?
Various embodiments related to three dimensional printers, and reinforced filaments, and their methods of use are described. In one embodiment, a void free reinforced filament is fed into an conduit nozzle. The reinforced filament includes a core, which may be continuous or semi-continuous, and a matrix material surrounding the core. The reinforced filament is heated to a temperature greater th…
Who is the assignee on this patent?
Markforged Inc
What technology area does this patent fall under?
Primary CPC classification B29C64/106. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue May 03 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).