Impregnation system for composite filament fabrication in three dimensional printing
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 drag the filament from the conduit nozzle.
1. A three-dimensional printer, comprising:
a printhead configured to receive and deposit a filament including a core and a matrix material, the core comprising at least one continuous fiber, the printhead comprising:
a receiving section configured to receive the filament, the receiving section including an inlet through which the filament is threaded; and
an outlet through which the filament is deposited onto a build surface or a previously added layer of a part; and
an impregnation system comprising a circuitous path having more than one change in direction configured such that the filament passes therethrough and the matrix material mechanically works into the at least one continuous fiber as the filament passes therethrough.
2. The three-dimensional printer according to claim 1 , wherein the impregnation system is located in the printhead.
3. The three-dimensional printer according to claim 1 , further comprising a cutting mechanism configured to selectively terminate the filament to deposit a length of the filament.
4. The three-dimensional printer according to claim 1 , further comprising a feeding mechanism configured to feed the filament to the printhead and a cutting mechanism positioned between the feeding mechanism and the receiving section of the printhead, the cutting mechanism configured to cut the filament.
5. The three-dimensional printer of claim 4 , wherein the impregnation system includes a heated zone configured to heat the filament to a softening temperature of the matrix material.
6. The three-dimensional printer according to claim 5 , wherein the impregnation system further includes a channel in the heated zone through which the filament passes, the channel in fluid communication with the inlet of the printhead.
7. The three-dimensional printer according to claim 6 , wherein the channel of the impregnation system includes a flexible tube.
8. The three-dimensional printer according to claim 7 , wherein the impregnation system further includes multiple offset rollers configured to bend the flexible tube to form the circuitous path.
9. The three-dimensional printer according to claim 1 , wherein the impregnation system is located in a pre-conditioner located upstream of the feeding mechanism.
10. The three-dimensional printer according to claim 9 , wherein the printhead further comprises a vacuum pressure system configured to vary a level of pressure applied to the filament within the printhead.
11. A three-dimensional printer, comprising:
a printhead configured to receive and deposit a filament including a core and a matrix material, the core comprising at least one fiber, the printhead comprising:
a receiving section configured to receive the filament, the receiving section including an inlet through which the filament is threaded; and
an outlet through which the filament is deposited onto a build surface or a previously added layer of a part; and
a feeding mechanism configured to feed the filament to the printhead;
a cutting mechanism positioned between the feeding mechanism and the receiving section of the printhead, the cutting mechanism configured to cut the filament; and
an impregnation system comprising a circuitous path having more than one change in direction configured such that the filament passes therethrough and the matrix material mechanically works into the core of the filament.
12. The three-dimensional printer of claim 11 , wherein the impregnation system includes a heated zone configured to heat the filament to a softening temperature of the matrix material.
13. The three-dimensional printer according to claim 12 , wherein the circuitous path is formed from a channel in the heated zone through which the filament passes, the channel in fluid communication with the inlet of the printhead.
14. The three-dimensional printer according to claim 13 , wherein the impregnation system further includes at least one set of compressive rollers configured to apply compressive forces to the filament as it passes through the channel, thereby forming the circuitous path.
15. A three-dimensional printer, comprising:
a printhead configured to receive and deposit a filament including a core and a matrix material, the core comprising at least one continuous fiber, the printhead comprising:
a receiving section configured to receive the filament, the receiving section including an inlet through which the filament is threaded; and
an outlet through which the filament is deposited onto a build surface or a previously added layer of a part;
an impregnation system comprising a circuitous path configured such that the filament passes therethrough and the matrix material mechanically works into the at least one continuous fiber and comprising a channel supporting a flexible tube through which the continuous fiber passes.
16. A three-dimensional printer, comprising:
a printhead configured to receive and deposit a filament including a core and a matrix material, the core comprising at least one continuous fiber, the printhead comprising:
a receiving section configured to receive the filament, the receiving section including an inlet through which the filament is threaded; and
an outlet through which the filament is deposited onto a build surface or a previously added layer of a part;
an impregnation system comprising a circuitous path configured such that the filament passes therethrough and the matrix material mechanically works into the at least one continuous fiber and comprising a channel including at least one set of compressive rollers configured to apply compressive forces to the filament as it passes through the channel.