Extruder thermal management
A variety of techniques are used to manage temperature in and around an extruder for a three-dimensional printer.
1. An extruder for a three-dimensional printer, the extruder comprising:
a nozzle assembly defining a first orifice, a second orifice, and a chamber fluidically coupling the first orifice to the second orifice;
a heating element in thermal communication with the chamber and positioned to heat the chamber via thermal conduction through the nozzle assembly;
a first fluid source directed toward the first orifice to form a thermal break mitigating an upward heat flow from the chamber toward the first orifice; and
a manifold structurally configured to draw a flow of ambient air from an ambient environment and to direct the flow of ambient air about the second orifice, the manifold defining a plurality of exit holes for the flow of ambient air, the plurality of exit holes positioned and oriented to direct the flow of ambient air in an omnidirectional fluid flow angled radially away from the second orifice and the nozzle assembly to cool a region of deposited build material around the perimeter of the second orifice rather than a portion of build material moving through the second orifice, wherein a first thermal conductivity between the heating element and the chamber is greater than a second thermal conductivity between the heating element and the plurality of exit holes defined by the manifold.
2. The extruder of claim 1 , wherein the flow of ambient air is provided by the first fluid source.
3. The extruder of claim 1 , wherein the flow of ambient air is provided by a second fluid source independent from the first fluid source.
4. The extruder of claim 1 , wherein exit holes of the plurality of exit holes are spaced equidistant from one another about a perimeter of the nozzle assembly.
5. The extruder of claim 1 , wherein the heating element is configured to heat the chamber to maintain a build material in the chamber at a target temperature above a liquefaction temperature of the build material, wherein the first fluid source moves ambient air toward the first orifice at a first temperature below the target temperature of the build material in the chamber, and wherein the flow of ambient air about the second orifice is provided at a second temperature below the target temperature of the build material.
6. An extruder for a three-dimensional printer, the extruder comprising:
a nozzle assembly defining a first orifice, a second orifice, and a chamber extending from the first orifice to the second orifice, the chamber defining a longitudinal axis extending through the first orifice and the second orifice;
a heating element coupled to the nozzle assembly, the heating element in thermal communication with the chamber via thermal conduction through the nozzle assembly;
a conduit coupled to the nozzle assembly, the conduit defining a third orifice directed toward the first orifice to form a thermal break mitigating heat flow from the chamber toward the first orifice; and
a manifold coupled to the nozzle assembly and configured to draw a flow of ambient air from an ambient environment, the manifold defining a plurality of exit holes, each exit hole of the plurality of exit holes disposed at a position along the longitudinal axis between the first orifice and the second orifice, and each exit hole of the plurality of exit holes angled radially away from the second orifice and the nozzle assembly to direct the flow of ambient air to cool a region of deposited build material around a perimeter of the second orifice, wherein a first thermal conductivity between the heating element and the chamber is greater than a second thermal conductivity between the heating element and the plurality of exit holes defined by the manifold.
7. The extruder of claim 6 , wherein the manifold is fluidically isolated from the chamber defined by the nozzle assembly.
8. The extruder of claim 7 , wherein the manifold is in fluid communication with the conduit such that a fluid is deliverable through the plurality of exit holes of the manifold and the third orifice of the conduit via a single fluid source.
9. The extruder of claim 6 , wherein the manifold includes an annulus coaxial with the longitudinal axis defined by the chamber to produce an omnidirectional fluid flow about the second orifice.
10. The extruder of claim 6 , wherein the exit holes corresponding to the plurality of exit holes are spaced equidistant from one another about a perimeter of a surface of the nozzle assembly.
11. The extruder of claim 6 , wherein the longitudinal axis defined by the chamber of the nozzle assembly intersects a transverse axis defined by the conduit at the first orifice.
12. The extruder of claim 6 , wherein, in a direction along the longitudinal axis, a surface of the nozzle assembly is tapered between the position of the plurality of exit holes and the second orifice.