NON-PLANAR TOOLPATHS FOR MATERIAL EXTRUSION HAVING CROSSING TOOLPATHS
A method of forming a component by material extrusion includes the steps of forming a plurality of first filaments extending along at least a first axis of a three dimensional space and forming a plurality of second filaments crossing the plurality of first filaments by extending in a direction with at least a component along second and third axes in the three dimensional space.
1 . A method of forming a component by material extrusion comprising the steps of:
forming a plurality of first filaments extending along at least a first axis of a three dimensional space; and
forming a plurality of second filaments crossing the plurality of first filaments by extending in a direction with at least a component along second and third axes in the three dimensional space.
2 . The method as set forth in claim 1 , wherein some of the plurality of first filaments and the plurality of second filaments are formed of a primary material with a second infill material.
3 . The method as set forth in claim 2 , wherein the infill material is delivered through a valve and a control is programmed to control the valve to deliver or block infill material.
4 . The method as set forth in claim 3 , wherein the infill material includes chopped fibers.
5 . The method as set forth in claim 4 , wherein the chopped fibers includes synthetic fibers.
6 . The method as set forth in claim 3 , wherein the infill material includes a continuous fiber.
7 . The method as set forth in claim 3 , wherein the infill material includes beads.
8 . The method as set forth in claim 7 , wherein the beads include glass beads.
9 . The method as set forth in claim 2 , wherein the infill material is selectively deposited into some of the plurality of first and second filaments and not deposited into other of the plurality of first and second filaments.
10 . The method as set forth in claim 9 , wherein at least some of the plurality of first and second filaments are formed only of the primary material.
11 . The method as set forth in claim 10 , wherein the at least some of the first filaments are formed in a plurality of stacked layer portions, and having at least one axial end adjacent one of the second filaments.
12 . The method as set forth in claim 11 , wherein one group of the second filaments extends along a direction with the component along the second axis, and a component along the third axis, and another group of the second filaments extending in a direction with a component in an opposed direction along at least one of the second and third axis, such that the groups cross each other.
13 . The method as set forth in claim 11 , wherein at least some of the second filaments are curved along all three of said axes.
14 . The method as set forth in claim 13 , wherein the component is an acoustic treatment for use in a gas turbine engine.
15 . The method as set forth in claim 1 , wherein the component is an acoustic treatment for use in a gas turbine engine.
16 . The method as set forth in claim 1 , wherein at least some of the first filaments are formed in a plurality of stacked layer portions, and having at least one axial end adjacent one of the second filaments.
17 . The method as set forth in claim 1 , wherein there is one group of the second filaments extends along a direction with the component along the second axis, and a component along the third axis, and another group of the second filament extending in a direction with a component in an opposed direction along at least one of the second and third axis such that the groups cross each other.
18 . The method as set forth in claim 17 , wherein at least some of the second filaments are curved along all three of said axes.
19 . The method as set forth in claim 1 , wherein the forming steps including depositing material in a heated environment.
20 . The method as set forth in claim 1 , wherein the component is an acoustic treatment for use in a gas turbine engine.